← Volver a resultados
Ficha bibliográfica · Consulta y acceso
Artículo

Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording

Shujun Zheng et al · Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China · 2024

Material complementario disponible
Lectura rápida. Revisá los datos básicos del recurso y luego accedé al contenido desde el botón principal. En esta ficha solo se muestra la información necesaria para identificar la obra, citarla y abrirla.

Acceso al recurso

Entrá al contenido desde la opción principal o elegí otra fuente disponible.

Acceso principal

Material complementario disponible

El enlace apunta a material asociado, anexos, tablas, datos o página complementaria. No se marca como libro/texto completo.
Abrir material

Resumen

Descripción general del contenido del recurso.

Orthogonal matrices have become a vital means for coding and signal processing owing to their unique distributional properties. Although orthogonal matrices based on amplitude or phase combinations have been extensively explored, the orthogonal matrix of polarization combinations (OMPC) is a novel, relatively unexplored concept. Herein, we propose a method for constructing OMPCs of any dimension encompassing 4n (where n is 1, 2, 4, 8, …) mutually orthogonal 2n-component polarization combinations. In the field of holography, the integration of polarization multiplexing techniques with polarization-sensitive materials is expected to emerge as a groundbreaking approach for multichannel hologram multiplexing, offering considerable enhancements in data storage capacity and security. A multidimensional OMPC enables the realization of multichannel multiplexing and dynamical modulation of information in polarization holographic recording. Despite consolidating all information into a single position within the material, we effectively avoided extraneous crosstalk during the reconstruction process. Our results show that achieving four distinct holographic images individually and simultaneously depends on the polarization combination represented by the incident wave. This discovery opens up a new avenue for achieving highly holographic information storage and dynamically displayed information, harnessing the potential of OMPC to expand the heretofore limited dimensionality of orthogonal polarization.

Cómo citar

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, S. Z. E. (2024). Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording. https://doi.org/10.29026/oea.2024.230180

MLA

al, Shujun Zheng et. "Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording." 2024. https://doi.org/10.29026/oea.2024.230180.

Chicago

al, Shujun Zheng et. 2024. "Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording.". https://doi.org/10.29026/oea.2024.230180.

Harvard

al, S. Z. E. 2024, Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording, Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China, available at: https://doi.org/10.29026/oea.2024.230180 [Accessed 28 Jun. 2026].

Compartir e imprimir

Guardá la ficha, copiá su enlace permanente o imprimila como PDF.

Exportar referencia

Si usás un gestor bibliográfico, podés exportar el registro en los formatos más comunes.

Detalles del recurso

Información bibliográfica útil para confirmar que se trata del material correcto.

Título
Orthogonal matrix of polarization combinations: concept and application to multichannel holographic recording
Autor / colaboradores
Shujun Zheng et al
Editorial
Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China
Año de publicación
2024
ISSN
2096-4579
ISSN
2096-4579
Idioma
eng

Materias

Explorá otros recursos relacionados a partir de estas materias.

Copiado